Claims
- 1. A method for producing a hot rolled steel bar capable of subsequent cold deformation, said method comprising the steps of:
- providing a billet having a steel composition consisting essentially of, in wt. %,
- ______________________________________carbon 0.10-0.14manganese 1.35-1.60silicon 0.20-0.35niobium 0.05-0.10boron 0.001-0.004molybdenum 0.01-0.1titanium 0.008-0.020nitrogen less than 0.008aluminum 0.020-0.030______________________________________
- and a balance consisting essentially of iron;
- subjecting said billet to a first hot rolling step to produce an intermediate hotrolled product;
- providing said billet with a temperature in the range 1175.degree. to 1230.degree. C. (2147.degree. to 2246.degree. F.) at the beginning of the first hot rolling step;
- cooling said intermediate product to a temperature in the range 780.degree. to 900.degree. C. (1420.degree. to 1650.degree. F.) following said first hot rolling step;
- subjecting the cooled intermediate product to a second hot rolling step to produce a continuous hot rolled bar;
- gathering said continuous hot rolled bar into a succession of overlapping loops;
- providing said continuous, hot rolled bar with a gathering temperature in the range 780.degree. to 855.degree. C. (1420.degree. to 1570.degree. F.) at the beginning of said gathering step;
- conveying said succession of overlapping loops through a cooling stage in which air at ambient temperature is blown through said loops to cool the loops to a temperature below 427.degree. C. (800.degree. F.);
- and then coiling said loops.
- 2. A method as recited in claim 1 wherein:
- said second hot rolling step provides said continuous, hot rolled bar with an austenitic microstructure having a relatively fine average austenitic grain size in the range 8 to 11 ASTM;
- and said austenitic microstructure undergoes transformation, during said conveying step, into a microstructure consisting essentially of bainite in relatively fine-sized packets reflecting the prior average austenitic grain size.
- 3. A method as recited in claim 2 and comprising:
- cooling said overlapping loops during said conveying step at a rate sufficiently rapid to substantially avoid the formation of either ferrite or pearlite.
- 4. A method as recited in claim 2 wherein:
- the bainite resulting from said transformation is at least primarily upper bainite.
- 5. A method as recited in claim 2 and comprising:
- imparting to the hot rolled bar in the coiled loops, as a result of said previously recited method steps, the following physical properties:
- ______________________________________yield strength 65-85 ksi (448-586 MPa)tensile strength 95-105 ksi (655-724 MPa)total elongation 20-26%reduction in area 58-70%______________________________________
- 6. A method as recited in claim 5 wherein said physical properties include:
- a fracture toughness of 15 foot lbs. (20.33 Joules) at -27.degree. C. for a bar having a diameter in the range 1.43-1.63 cm, and a fracture toughness of 10 foot lbs. (13.55 Joules) at 40.degree. C. for a bar having a diameter of 1.19 cm.
- 7. A method as recited in claim 1 and comprising:
- cooling said continuous hot rolled bar with a cooling fluid between said second hot rolling step and said gathering step.
- 8. A method as recited in claim 1 and comprising:
- employing a turbulent cooling liquid to cool said intermediate product between said first and second hot rolling steps.
- 9. A method as recited in claim 1 wherein:
- said continuous, hot rolled bar undergoes sufficient cooling prior to the beginning of said gathering step to provide said gathering temperature of 780.degree. to 855.degree. C. without any deliberate cooling step between said second hot rolling step and the gathering step.
- 10. A method as recited in claim 1 and comprising:
- cooling said coiled loops to room temperature; and
- subjecting the hot rolled, steel bar from the coiled loops to a partial cold drawing operation to produce a partially cold drawn bar.
- 11. A method for producing a cold deformed product, said method comprising:
- employing, as starting material, a partially cold drawn bar produced in accordance with the method of claim 10;
- and cold deforming said partially cold drawn bar to a final, cold deformed product, without annealing said partially cold drawn bar.
- 12. A method as recited in claim 11 wherein said final, cold deformed product is a threaded fastener and the cold deforming method comprises:
- forming a fastener head and rolling fastener threads, to provide said final, cold deformed product;
- said method being devoid of any heat treating steps after said forming and rolling step.
- 13. A method as recited in claim 12 wherein:
- said final cold deformed product is undistorted; and
- said method is devoid of any straightening step.
- 14. A method as recited in claim 12 wherein:
- said step of rolling fastener threads imparts residual compressive stresses to said final, cold deformed product, to improve the fatigue resistance thereof;
- and said method is devoid of any heat treating step which would remove said residual stress.
- 15. A method as recited in claim 1 wherein:
- said steel composition consists essentially of, in wt. %,
- ______________________________________carbon 0.11-0.13manganese 1.40-1.55silicon 0.24-0.28niobium 0.08-0.10boron 0.001-0.003molybdenum 0.06-0.08titanium 0.010-0.015nitrogen less than 0.004aluminum 0.020-0.025______________________________________
- and a balance consisting essentially of iron.
- 16. A method as recited in claim 15 wherein:
- said steel composition includes 0.16-0.18 wt. % chromium.
- 17. A method as recited in claim 1 or 15 wherein:
- said steel composition is devoid of vanadium.
- 18. A method as recited in claim 1 or 15 wherein:
- said steel composition has a 0.010 wt. % max. sulfur.
- 19. A method as recited in claim 1 or 15 wherein:
- said steel composition has up to 0.020 wt. % sulfur.
- 20. A method as recited in claim 1 or 15 wherein:
- said steel composition has 0.10 wt. % max. nickel and 0.12 wt. % max. copper.
- 21. A method as recited in claim 1 wherein:
- said steel composition includes 0.15-0.25 wt. % chromium.
- 22. A method as recited in claim 1 wherein:
- said billet is provided with a temperature in the range 1180.degree. to 1200.degree. C. (2156.degree. to 2192.degree. F.) at the beginning of said first hot rolling step.
- 23. A method as recited in claim 1 wherein:
- said intermediate product is cooled to a temperature below about 870.degree. C. (1598.degree. F.) following said first hot rolling step.
- 24. A method as recited in claim 1 wherein:
- said intermediate product is cooled to a temperature in the range 800.degree. to 830.degree. C. (1472.degree. to 1526.degree. F.) following said first hot rolling step.
- 25. A method as recited in claim 1 wherein:
- said first hot rolling step provides a reduction greater than 80%.
- 26. A method as recited in claim 25 wherein:
- said first hot rolling step provides a reduction in the range 85%-90%.
- 27. A method for producing a cold deformed steel product, said method comprising:
- employing, as starting material, a hot rolled steel bar produced in accordance with the method of claim 2;
- cold deforming said hot rolled steel bar into a final cold deformed product having residual compressive stresses in said final product;
- said method being devoid of any heat treating step which would remove said residual stresses.
- 28. A method as recited in claim 27 wherein:
- said final product is undistorted;
- and said method is devoid of a straightening step.
- 29. A method as recited in claim 27 wherein:
- said bainite in said hot rolled steel bar is substantially devoid of spheroidized iron carbides particles having a diameter of at least one micron;
- and said method is devoid of a spheroidizing anneal.
- 30. A method as recited in claim 27 wherein:
- said steel composition consists essentially of, in wt. %,
- ______________________________________carbon 0.11-0.13manganese 1.40-1.55silicon 0.24-0.28niobium 0.08-0.10boron 0.001-0.003molybdenum 0.06-0.08titanium 0.010-0.015nitrogen less than 0.004aluminum 0.020-0.025______________________________________
- and a balance consisting essentially of iron.
- 31. A hot rolled steel bar capable of subsequent cold deforming, said bar comprising:
- a steel composition consisting essentially of, in wt. %,
- ______________________________________carbon 0.10-0.14manganese 1.35-1.60silicon 0.20-0.35niobium 0.05-0.10boron 0.001-0.004molybdenum 0.01-0.1titanium 0.008-0.020nitrogen less than 0.008aluminum 0.020-0.030______________________________________
- with a balance consisting essentially of iron;
- and a microstincture consisting essentially of bainite in relatively fine-sized packets reflecting a prior average austenitic grain size in the range 8-11 ASTM.
- 32. A hot rolled steel bar as recited in claim 31 and comprising the following physical properties:
- ______________________________________yield strength 65-85 ksi (448-586 MPa)tensile strength 95-105 ksi (655-724 (MPa)total elongation 20-26%reduction in area 58-70%______________________________________
- 33. A bar as recited in claim 32 wherein said physical properties include:
- a fracture toughness of 15 foot lbs. (20.33 Joules) at -27.degree. C. for a bar having a diameter in the range 1.43-1.63 cm, and a fracture toughness of 10 foot lbs. (13.55 Joules) at 40.degree. C. for a bar having a diameter of 1.19 cm.
- 34. A hot rolled steel bar as recited in claim 31 or 32 wherein:
- said bainite is substantially devoid of spheroidized iron carbide having a diameter of at least one micron.
- 35. A hot rolled steel bar as recited in claim 31 wherein:
- said steel composition consists essentially of, in wt. %,
- ______________________________________carbon 0.11-0.13manganese 1.40-1.55silicon 0.24-0.28niobium 0.08-0.10boron 0.001-0.003molybdenum 0.06-0.08titanium 0.010-0.015nitrogen less than 0.004aluminum 0.020-0.025______________________________________
- and a balance consisting essentially of iron.
- 36. A hot rolled steel bar as recited in claim 35 wherein:
- said steel composition includes 0.16-0.18 wt. % chromium.
- 37. A hot rolled steel bar as recited in claim 31 or 35 wherein:
- said steel composition is devoid of vanadium.
- 38. A hot rolled steel bar as recited in claim 31 or 35 wherein:
- said steel composition has 0.010 wt. % max. sulfur.
- 39. A hot rolled steel bar as recited in claim 31 or 35 wherein:
- said steel composition has up to 0.020 wt. % sulfur.
- 40. A hot rolled steel bar as recited in claim 31 or 35 wherein:
- said steel composition has 0.10 wt. % max. nickel and 0.12 wt. % max. copper.
- 41. A hot rolled steel bar as recited in claim 31 wherein:
- said steel composition includes 0.15-0.25 wt. % chromium.
- 42. A cold deformed, threaded fastener comprising:
- a fastener head and rolled fastener threads;
- said fastener being undistorted and containing residual compressive stresses imparted thereto by the cold rolling of said threads;
- said fastener having a steel microstincture consisting essentially of bainite in relatively fine-sized packets corresponding to an average austenitic grain size in the range 8 to 11 ASTM.
- 43. A fastener as recited in claim 42 and comprising a steel composition consisting essentially of, in wt. %:
- ______________________________________carbon 0.10-0.14manganese 1.35-1.60silicon 0.20-0.35niobium 0.05-0.10boron 0.001-0.004molybdenum 0.01-0.1titanium 0.008-0.020nitrogen less than 0.008aluminum 0.020-0.030______________________________________
- and a balance consisting essentially of iron.
- 44. A fastener as recited in claim 42 or 43 wherein:
- said bainite is substantially devoid of spheroidized iron carbide particles having a diameter of at least one micron.
- 45. A fastener as recited in any of claims 42-44 and having the following physical properties:
- ______________________________________tensile strength at least 120 ksi (827 MPa)hardness at least 25 Rockwell C.______________________________________
- 46. A method as recited in claim 1 wherein said molybdenum content is at least 0.06 wt. %.
- 47. A hot rolled steel bar as recited in claim 31 wherein said molybdenum content is at least 0.06 wt. %.
- 48. A fastener as recited in claim 43 wherein said molybdenum content is at least 0.06 wt. %.
- 49. A hot rolled steel bar as recited in claim 31 wherein said bainite is at least primarily upper bainite.
- 50. A fastener as recited in claim 42 wherein said bainite is at least primarily upper bainite.
Parent Case Info
This is a continuation of U.S. application Ser. No. 08/249,456, filed May 26, 1994, now abandoned.
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Continuations (1)
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Number |
Date |
Country |
Parent |
249456 |
May 1994 |
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